Manipulating Rydberg atoms close to surfaces at cryogenic temperatures
Abstract
Helium atoms in Rydberg states have been manipulated coherently with microwave radiation pulses near a gold surface and near a superconducting NbTiN surface at a temperature of . The experiments were carried out with a skimmed supersonic beam of metastable helium atoms excited with laser radiation to Rydberg levels with principal quantum number between and . The separation between the cold surface and the center of the collimated beam is adjustable down to . Short-lived Rydberg levels were coherently transferred to the long-lived state to avoid radiative decay of the Rydberg atoms between the photoexcitation region and the region above the cold surfaces. Further coherent manipulation of the Rydberg levels with pulsed microwave radiation above the surfaces enabled measurements of stray electric fields and allowed us to study the decoherence of the atomic ensemble. Adsorption of residual gas onto the surfaces and the resulting slow build-up of stray fields was minimized by controlling the temperature of the surface and monitoring the partial pressures of HO, N, O and CO in the experimental chamber during the cool-down. Compensation of the stray electric fields to levels below was achieved over a region of along the beam-propagation direction which, for the beam velocity, implies the possibility to preserve the coherence of the atomic sample for several microseconds above the cold surfaces.
Cite
@article{arxiv.1402.7217,
title = {Manipulating Rydberg atoms close to surfaces at cryogenic temperatures},
author = {Tobias Thiele and Stefan Filipp and Josef Anton Agner and Hansjürg Schmutz and Johannes Deiglmayr and Mathias Stammeier and Pitt Allmendinger and Frédéric Merkt and Andreas Wallraff},
journal= {arXiv preprint arXiv:1402.7217},
year = {2014}
}
Comments
12 pages, 10 figures